液氢超级站系统设计与经济评价

IF 2.9 4区 工程技术 Q2 CHEMISTRY, MULTIDISCIPLINARY
Duho Kang, Haneul Mun, Jinwoo Park, Inkyu Lee
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引用次数: 0

摘要

基于液态氢(LH2)的加氢站(HRSs)具有高容量加氢的特点,便于大规模运输和储存。然而,在LH2 HRSs中,LH2的低温冷能在燃料电池汽车加氢所需的汽化过程中被浪费。为了克服这个问题,本研究提出了一种新型的基于lh2的氢超级站(HSS),它可以回收原本浪费的冷能来为该站发电,任何多余的电力都用来给电动汽车充电。为了探索HSS中最具成本效益的冷能回收配置,设计了两个发电循环:一个是布雷顿循环,一个是朗肯循环(BC-RC),另一个是两个朗肯循环串联(RC-RC)。结合BC-RC和RC-RC配置,采用两阶段设计,在蒸发过程中有效地回收大温度范围内的冷能。与采用RC-RC配置的HSS相比,采用BC-RC配置的HSS实现了53%的冷能回收,多产生19%的功率,并减少了8%的能源浪费。然而,在应用于HSS的小型冷能回收系统中,使用泵而不是压缩机所节省的成本超过了Brayton循环的额外发电效益。因此,具有RC-RC配置的HSS具有最高的经济可行性,净现值高出2%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
System Design and Economic Evaluation of a Liquid Hydrogen Superstation

Liquid hydrogen (LH2)-based hydrogen refueling stations (HRSs) are promising for high-capacity refueling, given the high density of LH2, which facilitates large-scale transportation and storage. However, in LH2 HRSs, the cryogenic cold energy of LH2 is wasted during the vaporization process required to refuel hydrogen for fuel cell vehicles. To overcome this issue, this study proposes a novel LH2-based hydrogen superstation (HSS) that recovers the otherwise wasted cold energy to generate electricity for the station, with any excess electricity used to charge electric vehicles. To explore the most cost-effective configuration for cold energy recovery in the HSS, two power generation cycles were designed: one incorporating a Brayton cycle followed by a Rankine cycle (BC-RC), and another using two Rankine cycles in series (RC-RC). Combining the BC-RC and RC-RC configurations, this two-stage design is adopted to efficiently recover cold energy across a broad temperature range during the vaporization process. The HSS using the BC-RC configuration achieves 53% more cold energy recovery, generates 19% more power, and experiences 8% less exergy waste compared to the HSS with the RC-RC setup. However, in smaller-scale cold energy recovery systems applied to HSS, the cost savings from using pumps instead of compressors outweigh the additional power generation benefits of the Brayton cycle. Consequently, the HSS with the RC-RC configuration demonstrates the highest economic feasibility, with a 2% higher net present value.

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来源期刊
Korean Journal of Chemical Engineering
Korean Journal of Chemical Engineering 工程技术-工程:化工
CiteScore
4.60
自引率
11.10%
发文量
310
审稿时长
4.7 months
期刊介绍: The Korean Journal of Chemical Engineering provides a global forum for the dissemination of research in chemical engineering. The Journal publishes significant research results obtained in the Asia-Pacific region, and simultaneously introduces recent technical progress made in other areas of the world to this region. Submitted research papers must be of potential industrial significance and specifically concerned with chemical engineering. The editors will give preference to papers having a clearly stated practical scope and applicability in the areas of chemical engineering, and to those where new theoretical concepts are supported by new experimental details. The Journal also regularly publishes featured reviews on emerging and industrially important subjects of chemical engineering as well as selected papers presented at international conferences on the subjects.
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